calculate mean using while and iteration?

4 vues (au cours des 30 derniers jours)
Madan Kumar
Madan Kumar le 30 Avr 2019
Commenté : Madan Kumar le 3 Mai 2019
Hi,
I have data of ~3500x2. I want to calulate mean of second column for a particular condition in first column using 'while'.
let data (a, b) be like
0.5 1.8
0.6 1.5
0.9 1.8
1.0 1.5
1.1 1.4
1.2 1.4
1.5 1.6
1.8 1.2
2.1 1.2
2.3 1.3
2.4 1.5
2.6 1.8
2.9 2.0
3.0 3.0
3.12 3.2
3.15 1.9
3.16 1.7
3.18 2.2
I need to calculate mean of b, if a> 0.5 and a<1.5. Then increase 'a' by 1 and calculate mean of b (i.e for a > 1.5 and a<2.5) and so on. It may be a silly question but I am stuck with it. My code is
del=0.5;
k=1;
a(k)=1;
while(a(k) >(a(k)-del) && a(k)< (a(k)+del))
xn(k)=mean(b(k));
k= k+1;
a(k)=a(k)+1;
end
but it shows error Index exceeds array bounds.
Error in untitled (line 12)
a(k)=a(k)+1;
Thank you for your help.
  2 commentaires
David Wilson
David Wilson le 30 Avr 2019
Modifié(e) : David Wilson le 30 Avr 2019
My code below is a bit ugly, but I think it does what you want:
cutoff = [0.5 1.5]; % band of interest
maxA = ceil(max(a))+0.5;
bmean = [];
for i=1:maxA
idx = find(a>cutoff(1) & a<cutoff(2));
bmean(i) = mean(b(idx));
cutoff = cutoff+1;
end
The means of column "b" are in variable bmean.
I note that you specified strict < as opposed to <= which may, or may not be what you really want.
Note that column a need not be sorted in increasing order.
Madan Kumar
Madan Kumar le 30 Avr 2019
Thank you...

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Réponse acceptée

Rik
Rik le 30 Avr 2019
So you want to calculate these values?
xn(1)=mean(b(a>0.5 & a<1.5));
xn(2)=mean(b(a>1.5 & a<2.5));
xn(3)=mean(b(a>2.5 & a<3.5));
etc?
You don't need a while loop for that:
a=[0.5 0.6 0.9 1.0 1.1 1.2 1.5 1.8 2.1 2.3 2.4 2.6 2.9 3.0 3.12 3.15 3.16 3.18];
b=[1.8 1.5 1.8 1.5 1.4 1.4 1.6 1.2 1.2 1.3 1.5 1.8 2.0 3.0 3.2 1.9 1.7 2.2];
del=0.5;
xn=zeros(1,ceil(max(a-del)));
for k=1:size(xn,2)
xn(k)=mean(b(a>(k-del) & a<(k+del)));
end
  4 commentaires
Afficher 2 commentaires plus anciens
Stephen23
Stephen23 le 30 Avr 2019
Modifié(e) : Stephen23 le 30 Avr 2019
"Suppose, I need xn(0.5)=... "
You can't. Indices must be whole integers greater than zero.
Either change del to 0.25 and leave it at that, or write a function which lets you have any input values that you desire. But you certainly cannot have indexing with non-integer values.
Madan Kumar
Madan Kumar le 3 Mai 2019
Ok...thank you...

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Plus de réponses (1)

KSSV
KSSV le 30 Avr 2019
Why loop? YOu can use inbuilt in mean. Let a,b be your columns.
idx = a>0.5 & a<1.5 ;
mean(b(idx))

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